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Sensors  2011 

Fabrication and Characterization of Electrospun Semiconductor Nanoparticle—Polyelectrolyte Ultra-Fine Fiber Composites for Sensing Applications

DOI: 10.3390/s111110372

Keywords: composite-nanofibers, polyelectrolytes, electrospinning, nano-effects

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Abstract:

Fluorescent composite fibrous assembles of nanoparticle-polyelectrolyte fibers are useful multifunctional materials, utilized in filtration, sensing and tissue engineering applications, with the added benefits of improved mechanical, electrical or structural characteristics over the individual components. Composite fibrous mats were prepared by electrospinning aqueous solutions of 6 wt% poly(acrylic acid) (PAA) loaded with 0.15 and 0.20%?v/v, carboxyl functionalized CdSe/ZnS nanoparticles (SNPs). The resulting fluorescent composite fibrous mats exhibits recoverable quenching when exposed to high humidity. The sensor response is sensitive to water concentration and is attributed to the change in the local charges around the SNPs due to deprotonation of the carboxylic acids on the SNPs and the surrounding polymer matrix.

References

[1]  Zou, W.; Cai, Q.; Cui, F. Preparation and characterization of TiO2/porous carbon multilayers. Curr. Appl. Phys 2001, 1, 423–426.
[2]  Chen, X.; Jiang, Y.; Wu, Z.; Li, D.; Yang, J. Morphology and gas-sensitive properties of polymer based composite films. Sens. Actuat. B Chem 2000, 66, 37–39.
[3]  Chiu, Y.; Chen, S.; Chen, J.; Chen, K.; Chen, H.; Sung, H. A dual-emission forster resonance energy transfer nanoprobe for sensing/imaging pH changes in the biological environment. ACS Nano 2010, 4, 7467–7474.
[4]  Richardson, T.; Dooling, C.; Worsfold, O.; Jones, L.; Kato, K.; Shinbo, K.; Kaneko, F.; Treggoning, R.; Vysotsky, M.; Hunter, C. Taking advantage of optical and electrical properties of organic molecules for gas sensing applications. Thin Solid Films 2001, 393, 259–266.
[5]  Yang, J.; Swager, T. Fluorescent porous polymer films as TNT chemosensors: Electronic and structural effects. J. Am. Chem. Soc 1998, 120, 11864–11873.
[6]  Fahnestock, K.J.; Manesse, M.; McIlwee, H.A.; Schauer, C.L.; Boukherroub, R.; Szunerits, S. Selective detection of hexachromium ions by localized surface plasmon resonance measurements using gold nanoparticles/chitosan composite interfaces. Analyst 2009, 134, 881–884.
[7]  Akimov, A.; Mukherjee, A.; Yu, C.; Chang, D.; Zibrov, A.; Hemmer, P.; Park, H.; Lukin, M. Generation of single optical plasmons in metallic nanowires coupled to quantum dots. Nature 2007, 450, 402–406.
[8]  Nazzal, A.; Qu, L.; Peng, X.; Xiao, M. Photoactivated CdSe nanocrystals as nanosensors for gases. Nano Lett 2003, 3, 819–822.
[9]  Liu, H.; Kameoka, J.; Czaplewski, D.A.; Craighead, H.G. Polymeric nanowire chemical sensor. Nano Lett 2004, 4, 671–675.
[10]  Neethirajan, S.; Jayas, D.S. Nanotechnology for the food and bioprocessing industries. Food Bioprocess Technol 2010, 4, 39–47.
[11]  Bonifacio, L.D.; Puzzo, D.P.; Breslav, S.; Willey, B.M.; McGeer, A.; Ozin, G.A. Towards the photonic nose: A novel platform for molecule and bacteria identification. Adv. Mater 2010, 22, 1351–1354.
[12]  Liu, S.; Tang, Z. Nanoparticle assemblies for biological and chemical sensing. J. Mater. Chem 2010, 20, 24–35.
[13]  Bo, C.; Ping, Z. A new determining method of copper(II) ions at ng ml-1 levels based on quenching of the water-soluble nanocrystals fluorescence. Anal. Bioanal. Chem 2005, 381, 986–992.
[14]  Rutledge, G. Formation of fibers by electrospinning. Adv. Drug Deliv. Rev 2007, 59, 1384–1391.
[15]  Reneker, D.; Yarin, A.; Fong, H.; Koombhongse, S. Bending instability of electrically charged liquid jets of polymer solutions in electrospinning. J. Appl. Phys 2000, 87, 4531–4547.
[16]  Matthews, J.; Wnek, G.; Simpson, D.; Bowlin, G. Electrospinning of collagen nanofibers. Biomacromolecules 2002, 3, 232–238.
[17]  Schiffman, J.D.; Schauer, C.L. A review: Electrospinning of biopolymer nanofibers and their applications. Polym. Rev 2008, 48, 317–352.
[18]  Baji, A.; Mai, Y.; Wong, S.; Abtahi, M.; Chen, P. Electrospinning of polymer nanofibers: Effects on oriented morphology, structures and tensile properties. Compos. Sci. Technol 2010, 70, 703–718.
[19]  Frenot, A.; Chronakis, I. Polymer nanofibers assembled by electrospinning. Curr. Opin. Colloid Interface Sci 2003, 8, 64–75.
[20]  Zhuang, X.; Cheng, B.; Kang, W.; Xu, X. Electrospun chitosan/gelatin nanofibers containing silver nanoparticles. Carbohydr. Polym 2010, 82, 524–527.
[21]  Schauer, C. Color changes in chitosan and poly(allyl amine) films upon metal binding. Thin Solid Films 2003, 434, 250–257.
[22]  Kim, B.; Park, H.; Lee, S.; Sigmund, W. Poly (acrylic acid) nanofibers by electrospinning. Mater. Lett 2005, 59, 829–832.
[23]  Li, L.; Hsieh, Y.L. Ultra-fine polyelectrolyte fibers from electrospinning of poly (acrylic acid). Polymer 2005, 46, 5133–5139.
[24]  Alivisatos, A. Semiconductor clusters, nanocrystals, and quantum dots. Science 1996, 271, 933–937.
[25]  Chen, Y.; Rosenzweig, Z. Luminescent CdS quantum dots as selective ion probes. Anal. Chem 2002, 74, 5132–5138.
[26]  Jorge, P.; Martins, M.A.; Trindade, T.; Santos, J.L.; Farahi, F. Optical fiber sensing using quantum dots. Sensors 2007, 7, 3489–3534.
[27]  Demir, M.M.; Soyal, D.; Nlu, C.U.; Kus, M.; Elik, S. Controlling spontaneous emission of CdSe nanoparticles dispersed in electrospun fibers of polycarbonate urethane. J. Phys. Chem. C 2009, 113, 11273–11278.
[28]  Xin, Y.; Huang, Z.; Jiang, Z.; Li, D.; Peng, L.; Zhai, J.; Wang, D. Photoresponse of a single poly(p-phenylene vinylene)-CdSe bulk-heterojunction submicron fiber. Chem. Commun 2010, 46, 2316–2318.
[29]  Liu, H.; Edel, J.; Bellan, L.; Craighead, H. Electrospun polymer nanofibers as subwavelength optical waveguides incorporating quantum dots. Small 2006, 2, 495–499.
[30]  Li, M.; Zhang, J.; Zhang, H.; Liu, Y.; Wang, C.; Xu, X.; Tang, Y.; Yang, B. Electrospinning: A facile method to disperse fluorescent quantum dots in nanofibers without forster resonance energy transfer. Adv. Funct. Mater 2007, 17, 3650–3656.
[31]  Gestos, A.; Whitten, P.G.; Spinks, G.M.; Wallace, G.G. Crosslinking neat ultrathin films and nanofibres of pH-responsive poly(acrylic acid) by UV radiation. Soft Matter 2010, 6, 1045–1052.
[32]  Meng, C.; Xiao, Y.; Wang, P.; Zhang, L.; Liu, Y.; Tong, L. Quantum-dot-doped polymer nanofibers for optical sensing. Adv. Mater 2011, 23, 3770–3774.
[33]  Hara, M. Polyelectrolytes: Science and Technology; Marcel Dekker, Inc: New York, NY, USA, 1993.
[34]  Muta, H.; Kawauchi, S.; Satoh, M. Ion-specific swelling behavior of uncharged poly(acrylic acid) gel. Colloid Polym. Sci 2003, 282, 149–155.
[35]  Wang, L. Calculating the influence of external charges on the photoluminescence of a CdSe quantum dot. J. Phys. Chem. B 2001, 105, 2360–2364.

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